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Hasselmann, J.

Publications and source records attributed to Hasselmann, J..

3 recordsLinked to original sources

Upregulation of Calbindin in Adult Inhibitory Neurons Reactivates Critical Period Plasticity in Mouse Visual Cortex

Critical periods are windows of peak learning performance where heightened synaptic plasticity enables fast, robust reorganization in juvenile brain circuits. Unlike adult plasticity which requires ongoing, persistent change in sensory experience, cortical representations can be rapidly changed during critical periods and have enduring effects. Transplantation of GABAergic inhibitory neurons has been shown to restore critical period plasticity to recipient circuits by triggering signalling changes within host inhibitory neurons. Here we transcriptionally profiled host inhibitory neurons in mouse primary visual cortex (V1) to detect gene expression changes during transplant-induced plasticity. Gene ontology enrichment analysis of differentially-expressed (DE) transcripts in host inhibitory neurons revealed synaptic plasticity- and inhibitory neuron development-related profiles. We assessed the protein expression of a top DE candidate, the calcium-binding protein Calbindin (Calb1), across transplant conditions and developmental stages. We found high Calb1 expression during the V1 critical period and during transplant-induced plasticity. To assess the functional significance of transplant-reactivated DE gene activity on visual cortical plasticity, we developed a set of AAVs to manipulate Calb1 expression specifically within inhibitory neurons. Using intrinsic signal imaging to measure ocular dominance plasticity, we found that Calb1 levels in V1 inhibitory neurons determine the extent of visual cortical plasticity. Our study provides evidence that direct induction of critical period-stage gene expression patterns in inhibitory neurons restores juvenile plasticity in targeted adult cortical circuits.

neuroscience↗

PPARδ activation in microglia drives a transcriptional response that primes phagocytic function while countering inflammatory activation

Microglia have been implicated in neurodegeneration, though their role remains unclear, as microglia can perform protective functions or promote neuroinflammation. Numerous studies have found that the transcriptome state of microglia can indicate where they lie along this continuum. To understand regulation of microglia transcriptome state, we considered the transcription factor PPAR8, because it is highly expressed in microglia and is a therapeutic target for Alzheimers disease, (AD) a neurodegenerative disorder characterized by progressive memory loss where microglia dysfunction is involved. When we delineated the microglia transcriptome in mice treated with PPAR8 agonist, we noted that PPAR8 activation blunted expression of inflammatory mediators and migration-enhancing genes, while boosting phagocytic genes. We then examined PPAR8 function in induced transcription factor (iTF) microglia-like cells, and confirmed PPAR8 agonism increases phagocyte function while reducing pro-inflammatory cytokines and migration. To understand PPAR8 regulation upon CNS insult, we exposed iTF-microglia to apoptotic neuron debris and defined six microglia transcriptome states as a function of PPAR8 activation, and observed PPAR8 agonism can shift microglia out of a homeostatic state to a primed, disease-associated microglia-like state. As PPAR8 agonism opposed gene expression favored by PU.1, a critical transcription factor in microglial inflammation and AD pathogenesis, we examined their relationship, documented a physical interaction, and found evidence for transrepression. Finally, we tested PPAR8 agonism in Huntingtons disease and tauopathy mice, and demonstrated PPAR8 could decrease neuroinflammation in vivo. These findings suggest that PPAR8 agonist therapy may mitigate microglial dysfunction by restoring beneficial functions, while suppressing detrimental inflammation.

neuroscience↗

Circulatory proteins shape microglia state and boost phagocytosis

Microglia, the brains immune cells, are highly responsive to their local environment. Given that circulatory proteins can enter the brain, we asked whether microglia are responsive to such proteins. Here, we identify a stable population of microglia specialized to take up circulatory proteins in a region-specific manner under physiological conditions; human hematopoietic stem cell-derived microglia replacing endogenous microglia in chimeric mice show similar regional specialization. Plasma-positive microglia are characterized by prominent expression of genes related to innate immunity and antigen presentation and exhibit high metabolic and phagocytic activity. This activity is dependent, in part, on microglial uptake and accumulation of circulatory Apolipoprotein AI (ApoA-I). Our findings thus identify a new model of communication between brain and periphery through specialized microglia.

neuroscience↗